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Peculiar piezoelectricity of atomically thin planar structures

journal contribution
posted on 2024-11-02, 12:40 authored by Mohammad Ghasemian, Torben DaenekeTorben Daeneke, Zahra Shahrbabaki, Jiong Yang, Kourosh Kalantar ZadehKourosh Kalantar Zadeh
The emergence of piezoelectricity in two-dimensional (2D) materials has represented a milestone towards employing low-dimensional structures for future technologies. 2D piezoelectric materials possess unique and unprecedented characteristics that cannot be found in other morphologies; therefore, the applications of piezoelectricity can be substantially extended. By reducing the thickness into the 2D realm, piezoelectricity might be induced in otherwise non-piezoelectric materials. The origin of the enhanced piezoelectricity in such thin planes is attributed to the loss of centrosymmetry, altered carrier concentration, and change in local polarization and can be efficiently tailored via surface modifications. Access to such materials is important from a fundamental research point of view, to observe the extraordinary interactions between free charge carriers, phonons and photons, and also with respect to device development, for which planar structures provide the required compatibility with the large-scale fabrication technologies of integrated circuits. The existence of piezoelectricity in 2D materials presents great opportunities for applications in various fields of electronics, optoelectronics, energy harvesting, sensors, actuators and biotechnology. Additionally, 2D flexible nanostructures with superior piezoelectric properties are distinctive candidates for integration into nano-scale electromechanical systems. Here we fundamentally review the state of the art of 2D piezoelectric materials from both experimental and theoretical aspects and report the recent achievements in the synthesis, characterization and applications of these materials.

Funding

ARC Centre of Excellence in Future Low Energy Electronics Technologies

Australian Research Council

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History

Related Materials

  1. 1.
    DOI - Is published in 10.1039/c9nr08063e
  2. 2.
    ISSN - Is published in 20403364

Journal

Nanoscale

Volume

12

Issue

5

Start page

2875

End page

2901

Total pages

27

Publisher

Royal Society of Chemistry

Place published

United Kingdom

Language

English

Copyright

This journal is © The Royal Society of Chemistry 2020

Former Identifier

2006098259

Esploro creation date

2020-06-22